Oxygen-vacancy-mediated BrO3− electroreduction: Positively charged microenvironment enables directional diffusion and spontaneous adsorption
Artikel i vetenskaplig tidskrift, 2026

Ozonation can disinfect drinking water without producing chlorinated byproducts, but BrO3 emerges as a carcinogenic by-product. Although the electroreduction could theoretically convert BrO3 into non-toxic Br, the detoxification process was hindered by the electrostatic repulsion of BrO3 from the negatively charged cathode. In this work, a commercial Fe foam was employed for electrochemically reducing BrO3 via a direct electron transfer mechanism, during which microcrystalline magnetite (Fe3O4) was in-situ generated with abundant oxygen vacancies (Ovs). The Ovs shaped neighboring Fe2+ atoms into a positively charged microenvironment for accelerating the directional diffusion of BrO3. Furthermore, Ovs activated the neighboring Fe2+ atoms into highly active sites for BrO3 adsorption in comparison to the energy-demanding adsorption on intact Fe3O4. Afterwards, BrO3 underwent complete detoxification with Ovs assisting throughout the whole process. By the in-situ defect engineering, the research points out an efficient approach to create a positively charged microenvironment for enhancing oxyanion electroreduction.

Positively charged microenvironment

Oxygen vacancy

Electroreduction

BrO3−

Författare

Xiangbin Huang

Xiamen University

Yue Cheng

Xiamen University

Zhipeng Luo

Xiamen University

Ruiqi Zheng

Xiamen University

Yangying Zhao

Xiamen University

Salman Farissi Arif Kunnath

Chalmers, Industri- och materialvetenskap, Material och tillverkning

Rui Liu

Chinese Academy of Sciences

Gong Zhang

Tsinghua University

Xin Yu

Xiamen University

Huabin Zeng

Xiamen University

Chemical Engineering Journal

13858947 (ISSN)

Vol. 546 180315

Ämneskategorier (SSIF 2025)

Materialkemi

DOI

10.1016/j.cej.2026.180315

Mer information

Senast uppdaterat

2026-08-14